Autoclave cooling device for laminated tempered glass production
By using a combination of snake tube and blower mechanism in the autoclave cooling system, the problem of low efficiency of the existing cooling system is solved, significantly improving the cooling liquid heat dissipation efficiency and improving the working efficiency of the production line.
Patent Information
- Application Number
- CN202421693389.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-17
- Publication Date
- 2025-06-24
- Estimated Expiration
- 2034-07-17
AI Technical Summary
The existing autoclave cooling system has low natural cooling efficiency, which leads to an increase in the cooling water temperature and an increase in the cooling time, which affects the working efficiency of the production line.
A cooling device for laminated tempered glass production is designed, using the cooperation of a snake tube and a heat dissipation mechanism to increase the cooling liquid heat dissipation time through the snake tube, and the belt tray and timing belt drive the blower mechanism to blow the coolant again.
By dispersing the coolant and increasing the contact time between air and coolant, the cooling efficiency of the coolant is significantly improved, the cooling time is reduced, and the working efficiency of the production line is improved.
Smart Images

Figure CN223010484U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of laminated toughened glass production, in particular to a high-pressure autoclave cooling device for laminated toughened glass production. Background Technique
[0002] A high-pressure autoclave refers to a reactor operating under high pressure. In the photovoltaic industry, as the final pressure forming equipment for producing laminated glass, the high-pressure autoclave has the advantages of large output, high finished product rate, and good product quality. Therefore, the high-pressure autoclave has become an important and essential production equipment for photovoltaic module encapsulation. However, due to the low natural cooling efficiency of the existing high-pressure autoclave cooling system, as it continuously circulates and operates, the temperature of the cooling water will become higher and higher, the time spent on cooling the high-pressure autoclave increases, and the working efficiency of the production line is affected. Therefore, a high-pressure autoclave cooling device for laminated toughened glass that is convenient to use has also been promoted and used in the market.
[0003] After retrieval, as disclosed in a Chinese patent document, a high-pressure autoclave cooling device for laminated toughened glass production [Application No.: CN202222253921.1]. This high-pressure autoclave cooling device for laminated toughened glass production includes a bottom plate and a high-pressure autoclave body. The high-pressure autoclave body is arranged on the top of the bottom plate, and a cooling pool is fixedly arranged in the middle of the top end of the bottom plate.
[0004] When the device disclosed in this patent is in use, the cooling pool can be blown by the cooperation of a driving motor and a fan blade, thereby accelerating the heat dissipation effect of the coolant. However, when in use, the unrefrigerated air directly dissipates heat through the cooling pool, which will result in poor heat dissipation efficiency of the coolant because the coolant all gathers together, and only cooling the coolant by the cooperation of the driving motor and the fan blade also has poor cooling efficiency, reducing the applicability of the device. Content of the Utility Model
[0005] The purpose of the utility model is to provide a high-pressure autoclave cooling device for laminated toughened glass production to solve the problems raised in the above background technique.
[0006] To achieve the above purpose, the utility model provides the following technical solution: A high-pressure autoclave cooling device for laminated toughened glass production, including a mounting frame and a high-pressure autoclave body installed inside it, further including:
[0007] A cooling box installed inside the mounting frame, a circulating pump is installed inside the mounting frame, a water outlet pipe is communicated with the surface of the high-pressure autoclave body, and the other end of the water outlet pipe is communicated with a serpentine pipe;
[0008] The heat dissipation mechanism installed inside the mounting frame, the other end of the serpentine tube is connected to a fixed shell, belt pulleys are arranged above and below the inner cavity of the mounting frame, a timing belt is movably connected to the surface of the belt pulley, and a blowing mechanism is installed on one side of the above-mentioned upper belt pulley.
[0009] Preferably, the heat dissipation mechanism includes a mounting shell fixed to the inner wall of the mounting frame and a servo motor bolted inside the mounting frame, and the output shaft of the servo motor is fixedly connected with a fan blade.
[0010] Preferably, the blowing mechanism includes a connecting rod fixed to one side of the upper belt pulley and a blade fixed to the other end thereof, and a connecting shell is fixedly connected to the top of the cooling box.
[0011] Preferably, a protective frame is arranged on one side of the mounting shell, and one side of the protective frame is fixedly connected to one side of the mounting shell.
[0012] Preferably, one side of the inner cavity of the fixed shell is designed with an inclined structure, and a blocking plate is fixedly connected to the bottom of the inner cavity of the fixed shell, and the number of the blocking plates is several.
[0013] Preferably, a support rod is fixedly connected to one side of the inner cavity of the mounting frame, and the other end of the support rod is rotatably connected to the surface of the upper belt pulley.
[0014] Compared with the prior art, the beneficial effects of the present utility model are as follows:
[0015] Through the cooperation of the serpentine tube and the heat dissipation mechanism, the present utility model disperses the coolant, which can accelerate the contact time between the air and the coolant, thereby improving the heat dissipation efficiency of the coolant. At the same time, with the cooperation of the belt pulley and the timing belt, the blowing mechanism and the fixed shell can cooperate with each other to blow and dissipate heat from the coolant again, and the air directly contacts the coolant, further improving the heat dissipation efficiency of the coolant, effectively improving the applicability of the device, and solving the problems of poor heat dissipation efficiency of the coolant and poor applicability when the existing device is in use. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Figure 1 is a three-dimensional structure schematic diagram of the present utility model;
[0017] Figure 2 is a partial three-dimensional sectional structure schematic diagram of the present utility model;
[0018] Figure 3 is a partial three-dimensional sectional structure schematic diagram of the present utility model;
[0019] Figure 4 is a partial three-dimensional structure schematic diagram of the present utility model.
[0020] In the figure: 1, mounting bracket; 2, autoclave body; 3, circulation pump; 4, water outlet pipe; 5, serpentine pipe; 6, cooling box; 7, fixed shell; 8, heat dissipation mechanism; 81, mounting shell; 82, servo motor; 83, fan blade; 9, belt pulley; 10, timing belt; 11, blowing mechanism; 111, connecting rod; 112, blade; 113, connecting shell; 12, support rod; 13, baffle plate; 14, protective frame. Detailed implementation manners
[0021] To further elaborate on the technical means and effects adopted by the present utility model to achieve the intended utility model purpose, the following will, in conjunction with the accompanying drawings and preferred embodiments, detail the specific implementation manners, structures, features and their effects of the present utility model as follows.
[0022] Please refer to Figures 1-4As shown in the figure, a high-pressure autoclave cooling device for the production of laminated tempered glass includes a mounting frame 1. The mounting frame 1 is designed in a U-shaped structure. Inside the mounting frame 1, a high-pressure autoclave body 2 is installed. Inside the mounting frame 1, a cooling tank 6 is installed. The cooling tank 6 stores coolant, which facilitates subsequent cooling of the high-pressure autoclave body 2. Inside the mounting frame 1, a circulation pump 3 is installed. The inlet pipe of the circulation pump 3 penetrates into the cooling tank 6 and is interconnected with it. The outlet pipe 4 of the outlet pipe penetrates into the high-pressure autoclave body 2 and is interconnected with it. The surface of the high-pressure autoclave body 2 is connected to an outlet pipe 4. The outlet pipe 4 can discharge the heated coolant inside the high-pressure autoclave body 2. The other end of the outlet pipe 4 is connected to a serpentine pipe 5. The serpentine pipe 5 is designed in a serpentine structure. Under this effect, the time of the coolant inside the serpentine pipe 5 can be increased, thereby improving the heat dissipation efficiency of the coolant. Inside the mounting frame 1, a heat dissipation mechanism 8 is installed. The heat dissipation mechanism 8 can blow air towards the surface of the serpentine pipe 5, thereby accelerating the heat dissipation efficiency of the coolant inside the serpentine pipe 5, effectively improving the heat dissipation efficiency of the coolant. The other end of the serpentine pipe 5 is connected to a fixed shell 7. The bottom of the fixed shell 7 is fixedly connected to the top of the cooling tank 6. Under this effect, the fixed shell 7 can be supported. One side of the inner cavity of the fixed shell 7 is designed in an inclined structure. At the bottom of the inner cavity of the fixed shell 7, a plurality of baffle plates 13 are fixedly connected. Under this effect, the coolant can be blocked, so that the coolant can be dispersed inside the fixed shell 7, avoiding the coolant from gathering together and affecting the heat dissipation effect. Under this effect, the coolant after being dissipated by the serpentine pipe 5 will be discharged from the inside of the fixed shell 7. Under the action of the fixed shell 7, the coolant can fall from a height, and the coolant is dissipated again during the falling process. Above and below the inner cavity of the mounting frame 1, pulley discs 9 are provided. The lower pulley disc 9 is used in cooperation with the heat dissipation mechanism 8. The surface of the pulley disc 9 is movably connected to a timing belt 10. Under this effect, the upper pulley disc 9 can be rotated through the cooperation of the pulley disc 9 and the timing belt 10 used in cooperation with the heat dissipation mechanism 8, thereby providing power for subsequent heat dissipation of the coolant. One side of the above-mentioned upper pulley disc 9 is provided with a blowing mechanism 11. The blowing mechanism 11 can blow air on the coolant discharged from the fixed shell 7 again, effectively improving the heat dissipation effect of the coolant. One side of the inner cavity of the mounting frame 1 is fixedly connected to a support rod 12. The other end of the support rod 12 is rotatably connected to the surface of the upper pulley disc 9. Under this effect, the pulley disc 9 can be supported, making it more stable during use, and avoiding the upper pulley disc 9 from being unstable during use and affecting the connection effect with the timing belt 10.
[0023] The heat dissipation mechanism 8 includes a mounting shell 81. The bottom of the mounting shell 81 is fixedly connected to the inner wall of the mounting frame 1. A servo motor 82 is bolted to one side of the inner cavity of the mounting frame 1. The output shaft of the servo motor 82 penetrates into the interior of the mounting shell 81 and is rotatably connected to the inner wall at the penetration point. The output shaft of the servo motor 82 is fixedly connected to a fan blade 83. When the fan blade 83 rotates through the servo motor 82, the air can be accelerated, so that the air can be blown onto the surface of the serpentine tube 5, accelerating the heat dissipation efficiency of the coolant. The output shaft of the servo motor 82 is fixedly connected to the lower belt pulley 9. Under this action, the upper belt pulley 9 can be driven to rotate through the cooperation of the lower belt pulley 9 and the timing belt 10. A protective frame 14 is arranged on one side of the mounting shell 81. One side of the protective frame 14 is fixedly connected to one side of the mounting shell 81. The protective frame 14 can protect the fan blade 83, so that the staff and foreign objects will not easily contact the fan blade 83, avoiding damage to the fan blade 83 and affecting the heat dissipation efficiency of the coolant.
[0024] The air blowing mechanism 11 includes a connecting rod 111. One side of the connecting rod 111 is fixedly connected to the surface of the upper belt pulley 9. The other end of the connecting rod 111 is fixedly connected to a blade 112. A connecting shell 113 is fixedly connected to the top of the cooling box 6. The blade 112 is located inside the connecting shell 113. Under this action, when the upper belt pulley 9 rotates, the blade 112 can be rotated through the connecting rod 111, so that the blade 112 accelerates the air, accelerating the heat dissipation effect of the coolant. The opening on one side of the connecting shell 113 is designed with an inclined structure. The opening on one side of the connecting shell 113 corresponds to the position of the fixed shell 7. Under this action, the air discharged from the connecting shell 113 can be blown onto the coolant inside the fixed shell 7, effectively improving the heat dissipation efficiency of the coolant.
[0025] It should be noted that: technical features such as the autoclave body 2 proposed in this technical solution should be regarded as the technologies in the comparative cases. The specific structures, working principles, and possible control methods and spatial layout methods involved in these technical features can be selected conventionally in this field, and this technical solution will not be further elaborated specifically.
[0026] Working principle: First, turn on the circulation pump 3. Under the action of the circulation pump 3, the coolant inside the cooling tank 6 is discharged into the autoclave body 2. Immediately afterwards, under the action of pressure, the excess coolant is discharged from the water outlet pipe 4 into the inside of the serpentine pipe 5. Then, turn on the servo motor 82. Under the action of the servo motor 82, the fan blade 83 is driven to rotate to blow air onto the surface of the serpentine pipe 5. With the cooperation of the serpentine pipe 5 and the fan blade 83, the coolant is dissipated. Subsequently, the cooled coolant is discharged from the fixed housing 7. And with the cooperation of the pulley 9 and the timing belt 10, the connecting rod 111 drives the blade 112 to rotate. With the cooperation of the blade 112 and the connecting housing 113, air can be blown onto the surface of the coolant inside the fixed housing 7, thereby cooling the coolant again. Subsequently, the coolant falls into the cooling tank 6 and is then discharged into the autoclave body 2 by the circulation pump 3 again.
[0027] The above is only a preferred embodiment of the present invention, and it is not intended to limit the present invention in any form. Although the present invention has been disclosed above with a preferred embodiment, it is not intended to limit the present invention. Any person skilled in the art can make some changes or modifications to the equivalent embodiments by using the above-disclosed technical content within the scope of the technical solution of the present invention. However, as long as it does not depart from the content of the technical solution of the present invention, any brief modifications, equivalent changes and modifications made to the above embodiments based on the technical essence of the present invention still fall within the scope of the technical solution of the present invention.
Claims
1. A cooling device for an autoclave for producing laminated tempered glass, comprising a mounting frame (1) and an autoclave body (2) mounted therein, characterized in that: Also includes: A cooling box (6) is installed inside the mounting frame (1), a circulating pump (3) is installed inside the mounting frame (1), a water outlet pipe (4) is connected to the surface of the autoclave body (2), and the other end of the water outlet pipe (4) is connected to a serpentine pipe (5); A heat dissipation mechanism (8) is installed inside the mounting frame (1), the other end of the serpentine tube (5) is connected to a fixed shell (7), a belt pulley (9) is arranged above and below the inner cavity of the mounting frame (1), a timing belt (10) is movably connected to the surface of the belt pulley (9), and a blower mechanism (11) is installed on one side of the belt pulley (9) above.
2. The autoclave cooling device for producing laminated tempered glass according to claim 1, characterized in that: The heat dissipation mechanism (8) comprises a mounting shell (81) fixed to the inner wall of the mounting frame (1) and a servo motor (82) bolted to the inside of the mounting frame (1); the output shaft of the servo motor (82) is fixedly connected to a fan blade (83).
3. The autoclave cooling device for producing laminated tempered glass according to claim 1, characterized in that: The air blowing mechanism (11) comprises a connecting rod (111) fixed to one side of the upper belt pulley (9) and a blade (112) fixed to the other end thereof, and a connecting shell (113) is fixedly connected to the top of the cooling box (6).
4. The autoclave cooling device for producing laminated tempered glass according to claim 2, characterized in that: A protection frame (14) is provided on one side of the installation shell (81), and one side of the protection frame (14) is fixedly connected to one side of the installation shell (81).
5. The autoclave cooling device for producing laminated tempered glass according to claim 1, characterized in that: One side of the inner cavity of the fixed shell (7) is designed as an inclined structure, and a blocking plate (13) is fixedly connected to the bottom of the inner cavity of the fixed shell (7), and the number of the blocking plates (13) is several.
6. The autoclave cooling device for producing laminated tempered glass according to claim 1, characterized in that: A support rod (12) is fixedly connected to one side of the inner cavity of the mounting frame (1), and the other end of the support rod (12) is rotatably connected to the surface of the upper belt pulley (9).
Citation Information
Patent Citations
Autoclave cooling device for laminated tempered glass production
CN217910293U